Zheng Fangyu, Wu Peikun, Wang Lizhi, Shi Yueli, Jiang Jiangmin, Chen Yaxin, Zhuang Quanchao, Liu Qiangchun, Ju Zhicheng, Kong Xiangkai
School of Materials and Physics & Center of Mineral Resource Waste Recycling, China University of Mining and Technology, Xuzhou, Jiangsu, 221116, China.
School of Physics and Electronic Information, Huaibei Normal University, Huaibei, Anhui, 235000, China.
Small. 2025 Feb;21(8):e2409454. doi: 10.1002/smll.202409454. Epub 2025 Jan 16.
Designing spent graphite anodes from lithium-ion batteries (LIBs) for applications beyond regenerated batteries offers significant potential for promoting the recycling of spent LIBs. The battery-grade graphite, characterized by a highly graphitized structure, demonstrates excellent conductive loss capabilities, making it suitable for microwave absorption. During the Li-ion intercalation and deintercalation processes in battery operation, the surface layer of spent graphite (SG) becomes activated, forming oxygen-rich functional groups that enhance the polarization loss mechanism. To further control the polarization loss and achieve optimized impedance matching, reduced graphene oxide (rGO) is employed as a modifier. Herein, rGO serves as a binder, effectively combining individual SG particles. The matched Fermi levels of SG and rGO reduce the interfacial barrier, facilitating rapid electron transfer. Simultaneously, their combination forms a 3D conduction network, which not only enhances multiple scattering, reflection, and attenuation of electromagnetic waves but also provides abundant polarization centers for increased microwave absorption. As a result, the optimized SG/rGO aerogel achieves an impressive effective absorption bandwidth of 7.04 GHz and accompanied by a minimum reflection loss of -51.1 dB. This study broadens the scope of spent LIBs utilization and provides insights for wilder and more functional applications.
将锂离子电池(LIBs)中的废石墨阳极设计用于再生电池以外的应用,为促进废LIBs的回收利用提供了巨大潜力。具有高度石墨化结构的电池级石墨具有出色的导电损耗能力,使其适用于微波吸收。在电池运行的锂离子嵌入和脱嵌过程中,废石墨(SG)的表面层被激活,形成富氧官能团,增强了极化损耗机制。为了进一步控制极化损耗并实现优化的阻抗匹配,采用还原氧化石墨烯(rGO)作为改性剂。在此,rGO用作粘合剂,有效地将单个SG颗粒结合在一起。SG和rGO匹配的费米能级降低了界面势垒,促进了快速电子转移。同时,它们的组合形成了三维导电网络,不仅增强了电磁波的多次散射、反射和衰减,还提供了丰富的极化中心以增加微波吸收。结果,优化后的SG/rGO气凝胶实现了令人印象深刻的7.04 GHz有效吸收带宽,并伴有-51.1 dB的最小反射损耗。本研究拓宽了废LIBs的利用范围,并为更广泛、更具功能性的应用提供了见解。